Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
773
datasets available to search
ShareScore release 0.9.0
Dataset results
773 results for “medieval”
Deserted medieval fortified settlements in the hinterland of Ravenna seen from drone
<p>This dataset puts together several drone images shot between 2020 and 2022 over potentially deserted medieval fortified settlements in the hinterland of Ravenna.</p><p>Selected images are included and discussed in the paper Abballe, Michele (2023), Legacy imagery, continuous satellite monitoring and targeted drone surveys for the study of deserted medieval fortified settlements in the hinterland of Ravenna, Italy, "Archeologia e Calcolatori", 34(2), pp. 225-246. <a href="https://doi.org/10.19282/ac.34.2.2023.12">https://doi.org/10.19282/ac.34.2.2023.12</a></p><p>This is one of the datasets produced within Michele Abballe's PhD project "Geoarchaeology and palaeoDEMs modelling to assess the archaeological potential of Ravenna and its hinterland". All other datasets are available at https://zenodo.org/communities/geoarchaeology-palaeodems-ravenna-hinterland/</p><p>The drone employed was a DJI Mavic Pro 2 with a 20-megapixel Hasselblad optical camera.</p><p>The sites investigated are:</p><p>1) S. Giovanni in Pentecaso, Massa Lombarda (RA), Italy</p><p>Coordinates: 44.479008, 11.811788</p><p>First drone flight on 27th July 2021</p><p>Second drone flight on 8th August 2022</p><p>2) Cavassona, Imola (BO), Italy</p><p>Coordinates: 44.443366, 11.777063</p><p>First drone flight on 14th July 2020</p><p>3) <i>Castrum Taularie</i>, Imola (BO), Italy</p><p>Coordinates: 44.391166, 11.730569</p><p>First drone flight on 14th July 2020</p><p>Second drone flight on 18th July 2021</p><p>4) Montaccio, Imola (BO), Italy</p><p>Coordinates: 44.386165, 11.655489</p><p>First drone flight on 6th August 2022</p>
Foot anomalies in four post-medieval, Dutch populations (17th-19th century)
<p>This dataset was compiled for the master's thesis "Familiar Feet. Kinship analysis using foot anomalies in the cemetery of Middenbeemster (Netherlands, 17th to 19th century)" at Leiden University (Netherlands) by the author. The thesis was submitted on June 15th, 2021 (<a href="https://hdl.handle.net/1887/3204807">https://hdl.handle.net/1887/3204807</a>). The data was collected in the period from January to May 2021 at the Laboratory of Human Osteoarchaeology at Leiden University.</p> <p>It includes the data of 380 adult individuals from four different post-medieval, Dutch populations: the rural population of Middenbeemster (MB) (Hakvoort 2013) and the urban populations of Eindhoven (Catharinakerk) (EH) (Arts 2013), Zwolle (Broerenkerk) (ZW) (Clevis and Constandse-Westermann 1992) and Arnhem (Eusebiuskerk) (AR) (Baetsen et al. 2018). For every individual, an estimate of sex and age-at-death was collected. If a DNA analysis was performed, then this result was used instead of an estimation. The sex estimations of the individuals were based on pelvic and cranial morphology (Bainbridge & Genoves Tarazaga, 1956; Bass, 1987; Buikstra & Ubelaker, 1997; Maat & Mastwijk, 2009; McCormick et al., 1991; Phenice, 1969; Stewart, 1979; Steyn & Işcan, 1999; Workshop for European Anthropologists (WEA), 1980) and were supported by archival data. For the Eindhoven collection, the DNA-determined sex estimations took precedence over the estimations by traditional bioarchaeological techniques (Baetsen & Weterings-Korthorst, 2013). The used abbreviations are M = male, PM = probable male, I = indeterminate, PF = probable female, F = female. <br> Age-at-death estimations were made according to traditional bioarchaeological techniques (Brooks & Suchey, 1990; Buckberry & Chamberlain, 2002; İşcan et al., 1984, 1985; Lovejoy et al., 1985; Maat, 2001; Meindle & Lovejoy, 1985; Todd, 1920). The used abbreviations are EYA = early young adult, LYA = late young adult, MA = middle adult, OA = old adult.</p> <p>The foot anomalies included are accessory navicular (AccessNav), brachydactyly D (BrachyD), brachydactyly of the first metatarsal (BrachyMT1), brachydactyly of the fourth metatarsal (BrachyMT4), brachydactyly of the first proximal phalanx (BrachyPP1), calcaneocuboid coalition (CalcCubCoal), calcaneonavicular coalition (CalcNavCoal), coalition between the intermediate and lateral cuneiform (CF2CF3Coal), coalition between the lateral cuneiform and the third metatarsal (CF3MT3Coal), talocalcaneal coalition (TaloCalcCoal), talonavicular coalition (TaloNavCoal) and os intermetatarseum with the medial cuneiform (CF1Intermet), the first metatarsal (MT1Intermet) and/or the second metatarsal (MT2Intermet) involved. The scoring itself was performed without prior knowledge of skeletal data like sex and age to avoid observer bias. The trait could be marked absent (0), present (1), indiscernible if the bone was damaged (6), or missing if the bone was not present (9) for each separate foot (left (L) or right (R) side). Tarsal coalitions were scored if at least one of the two bones could be marked “absent/present”. In the remarks, some of the found lesions are described in more detail.</p> <p>For some of the individuals, there is archival data available. This is indicated with 'Yes' or 'No' in the 'Archive data?' column. For the Middenbeemster population, the location of the individual graves was determined from the grave polygons in the excavation data in QGIS by calculating the centroids of these polygons and resulted in a single pair of (x, y) coordinates.</p> <p>This dataset was used to identify probable genetic relatives within the Middenbeemster skeeltal collection through developmental foot anomalies and to analyse the spatial structure of the Middenbeemster cemetery in the context of intracemetery kinship relations. The Middenbeemster trait frequencies for these anomalies were compared to those of a reference sample of the post-medieval Dutch population (consisting of individuals from the Dutch post-medieval collections of Arnhem, Eindhoven, Zwolle). A hypothetical kinship group could be identified when the trait frequencies of the Middenbeemster sample were considerably higher than those in the reference sample. Other sources had only limited validation value in relation to the hypothesis. Visual examination and spatial statistics of the distribution of the hypothetical kinship group revealed a possible patrilineally structured cemetery, although this is based on a small sample. By putting the observed trait frequencies in a broader context, the data suggested a rather high inter-relatedness of the Middenbeemster community. It also exposed the need for a better understanding of the used traits and perhaps a different approach to kinship analysis (due to necessarily large time investment in contrast to limited results). In conclusion, this study gave an insight into the social structure of post-medieval Dutch communities. Future improvements to kinship analysis may not only be beneficial for bioarchaeology, but also for other fields such as forensic anthropology.<br> For more information on this research, see the thesis (<a href="https://hdl.handle.net/1887/3204807">https://hdl.handle.net/1887/3204807</a>) or the article published in <em>International Journal of Osteoarchaeology</em> (DOI: 10.1002/oa.3100).</p> <p> </p> <p>References:</p> <p>Arts, Nico. 2013. Een knekelveld maakt geschiedenis. Het archeologisch onderzoek van het koor en het grafveld van de middeleeuwse Catharinakerk in Eindhoven, circa 1200-1850. Rapport 22. Utrecht: Uitgeverij Matrijs.</p> <p>Baetsen, Steffen, Willem Baetsen, Martijn Defilet, and Gerben Zielman. 2018. ‘Sint-Jansbeek brengt Oude Kerkhof boven water. Graven bij de Arnhemse Eusebiuskerk’. Archeologie in Nederland 3: 34–43.</p> <p>Baetsen, Steffen, and L. Weterings-Korthorst. 2013. ‘De menselijke overblijfselen’. In Een knekelveld maakt geschiedenis. Het archeologisch onderzoek van het koor en het grafveld van de middeleeuwse Catharinakerk in Eindhoven, circa 1200-1850, edited by Nico Arts and E. Altena, 288. Utrecht: Uitgeverij Matrijs.</p> <p>Bainbridge, D., and S. Genoves Tarazaga. 1956. ‘A Study of Sex Differences in the Scapula’. Journal of the Royal Anthropological Institute of Great Britain and Northern Ireland 86 (2): 109–34. https://doi.org/10.2307/2843994.</p> <p>Bass, W. M. 1987. Human Osteology: A laboratory and Field Manual. Missouri Archaeological Society. Special Publication 2. Columbia (Mo): Missouri Archaeological Society.</p> <p>Brooks, S., and J. M. Suchey. 1990. ‘Skeletal Age Determination Based on the Os Pubis: A Comparison of the Acsadi-Nemeskeri and Suchey-Brooks Methods’. Human Evolution 5 (3): 227–38.</p> <p>Buckberry, J.L., and A.T. Chamberlain. 2002. ‘Age Estimation from the Auricular Surface of the Ilium: A Revised Method’. American Journal of Physical Anthropology 119 (3): 231–39. https://doi.org/10.1002/ajpa.10130.</p> <p>Buikstra, Jane E., and Douglas H. Ubelaker. 1997. Standards for Data Collection from Human Skeletal Remains. 3rd ed. Arkansas Archaeological Survey Research Series 44. Fayetteville, Arkansas: Arkansas Archaeological Survey.</p> <p>Clevis, Hemmy, and T. S. Constandse-Westermann. 1992. De doden vertellen: opgraving in de Broerekerk te Zwolle 1987-1988. Kampen: Stichting Archeologie IJssel/Vechtstreek III.</p> <p>Hakvoort, A. 2013. ‘De begravingen bij de Keyserkerk te Middenbeemster’. Hollandia Reeks 464. Hollandia Reeks. Zaandijk: Hollandia Archeologen.</p> <p>İşcan, M. Y., S. R. Loth, and R. K. Wright. 1985. ‘Age Estimation from the Rib by Phase Analysis: White Females’. Journal of Forensic Sciences 30 (3): 853–63.</p> <p>İşcan, M. Yaşar, Susan R. Loth, and Ronald K. Wright. 1984. ‘Metamorphosis at the Sternal Rib End: A New Method to Estimate Age at Death in White Males’. American Journal of Physical Anthropology 65 (2): 147–56. https://doi.org/10.1002/ajpa.1330650206.</p> <p>Lovejoy, C. Owen, Richard S. Meindl, Thomas R. Pryzbeck, and Robert P. Mensforth. 1985. ‘Chronological Metamorphosis of the Auricular Surface of the Ilium: A New Method for the Determination of Adult Skeletal Age at Death’. American Journal of Physical Anthropology 68 (1): 15–28. https://doi.org/10.1002/ajpa.1330680103.</p> <p>Maat, G. J. R., and R. W. Mastwijk. 2009. Manual for the Physical Anthropological Report. 6th ed. Barge’s Anthropologica 6. Leiden: Barge’s Anthropologica.</p> <p>Maat, George J. R. 2001. ‘Diet and Age-At-Death. Determination from Molar Attrition: A Review Related to the Low Countries’. The Journal of Forensic Odonto-Stomatology 19: 18–21.</p> <p>McCormick, W. F., J. H. Stewart, and H. Greene. 1991. ‘Sexing of Human Clavicles Using Length and Circumference Measurements’. The American Journal of Forensic Medicine and Pathology 12 (2): 175–81. https://doi.org/10.1097/00000433-199106000-00017.</p> <p>Meindl, Richard S., and C. Owen Lovejoy. 1985. ‘Ectocranial Suture Closure: A Revised Method for the Determination of Skeletal Age at Death Based on the Lateral-Anterior Sutures’. American Journal of Physical Anthropology 68 (1): 57–66. https://doi.org/10.1002/ajpa.1330680106.</p> <p>Phenice, T. W. 1969. ‘A Newly Developed Visual Method of Sexing the Os Pubis’. American Journal of Physical Anthropology 30 (2): 297–301. https://doi.org/10.1002/ajpa.1330300214.</p> <p>Stewart, T. D. 1979. Essentials of Forensic Anthropology. Springfield (Ill.): C. C. Thomas.</p> <p>Steyn, M., and M. Y. Işcan. 1999. ‘Osteometric Variation in the Humerus: Sexual Dimorphism in South Africans’. Forensic Science International 106 (2): 77–85. https://doi.org/10.1016/s0379-0738(99)00141-3.</p> <p>Todd, T. 1920. ‘Age Changes in the Pubic Bones, I: The White Male Pubis’. American Journal of Physical Anthropology 3: 285–334.</p> <p>Workshop for European Anthropologists (WEA). 1980. ‘Recommendations for Age and Sex Diagnoses of the Skeleton’. Journal of Human Evolution 9: 517–49. https://doi.org/10.1016/j.jchb.2005.07.002.</p> <p> </p>
Nicosia, Cyprus. Bedesten, medieval annex
<p>Nicosia, Cyprus. Bedesten, medieval annex, to the south east of the main building, as documented in 1974.</p>
Nicosia, Cyprus. Bedesten, medieval annex
<p>Nicosia, Cyprus. Bedesten, medieval annex, to the south east of the main building, as documented in 1974.</p>
pXRF analysis of medieval and modern ceramics from Erbray (France)
<p>This dataset contains analyses of 60 ceramic samples from Les Landelles (Erbray, Loire-Atlantique, France). The chemical composition of the samples was obtained by portable X-ray fluorescence spectrometry (pXRF).</p> <p><strong>Method</strong></p> <p>The outer surfaces of all the samples were mechanically removed prior to analysis.</p> <p>The samples were heated to 950°C for one hour after 24h drying at 50°C, weighted for LOI calculation and ground in a tungsten carbide mortar. Measurements were made on pelletized powders.</p> <p>Measurements were carried out on powders placed in sample holders, through a Mylar film.</p> <p>A Vanta VCR C-series portable X-ray fluorescence spectrometer (Olympus) was used on a laboratory bench with a beam diameter of 10 mm. The spectrometer is equipped with a 4W, 40kV max, 200 µA max X-ray tube (Rh anode) and a silicon drift detector (SDD). For each analysis, the instrument was operated alternately at low energy (10 keV) for 90 s to quantify light elements and at high energy (40 keV) for 90 s to quantify heavy elements. No vacuum or helium flow was used. Analytical repeatability, accuracy and precision were checked using an in-house obsidian standard.</p> <p>Using the GeoChem internal calibration, 15 elements were quantified: Al, Si, K, Ca, Ti, Cr, Mn, Fe, Ni, Cu, Zn, Rb, Sr, Zr, Pb.</p> <p>The files beamspectra.csv and chemistry.csv are the export files as produced by the instrument.</p> <p>The file erbray.csv contains all chemical compositions (only chemical elements for which measurements are considered reliable are retained), with the following columns:</p> <ul> <li><em>sample</em>: sample reference.</li> <li><em>laboratory</em>: analysis laboratory.</li> <li><em>date</em>: date of the analysis.</li> <li><em>group</em>: technical group.</li> <li><em>material</em>: type of material.</li> <li><em>stratigraphy</em>: stratigraphic unit.</li> <li><em>comments</em>: extra information.</li> <li><em>LOI</em>: loss on ignition (percent).</li> <li><em>Al, Si, K, Ca, Ti, Cr, Fe, Rb, Sr, Zr, Pb</em>: amounts and corresponding uncertainties (ppm).</li> </ul>
Fig. 1 in Animal remains of the medieval settlement near Brankovtsi village (Vidin Region, NW Bulgaria)
Fig. 1. Some animal remains from the medieval settlement near Brankovtsi village: Capreolus capreolus, proximal right antler (a, b), Gallus gallus domestica, tibiotarsus sin. (c). Photo: Z. Boev
Fig. 2 in Animal remains of the medieval settlement (9 -10 century A. D.) near Nedan village (Veliko Tarnovo Region, CN Bulgaria)
Fig. 2. Part of the reptilian bone remains: unidentified bones (a, b); Vipera sp. (cf. ammodytes), dentary (dental part) of mandible (c, d, f); Lacertidae gen. indet. (mandible)(e); Dolichophis caspius, compound bone (articular part) of mandible (i); Natrix natrix/tessellata, compound bone (articular part) of mandible (j); Colubridae gen. indet., compound bone (articular part) of mandible (g, h). Photo: Z. Boev.
Fig. 1 in Animal remains of the medieval settlement (9 -10 century A. D.) near Nedan village (Veliko Tarnovo Region, CN Bulgaria)
Fig. 1. Part of the bone remains of Grey wolf (Canis lupus): mandibula sin. (above), mandibula dex. (bellow). Photo: Z. Boev.
Medieval Book Hand Scribes
<p>This is a data set comprising 46 medieval scribes writing in book hand scripts. Each scribe is represented by 20 manuscript images (pages or spreads). Documentation in the file doc.pdf.</p>
Satgata सत्गता (Dist. Lalitpur, Uttar Pradesh). Collection of hero-stones at the site of a medieval step-well.
<p>Satgata सत्गता (Dist. Lalitpur, Uttar Pradesh). Collection of hero-stones at the site of a medieval step-well, the central one dated VS 1438 (CE 1381-82) thus during the rule of Fīroz Shāh Tugluq. © U.P. State Archaeology Directorate</p> <p><strong>Coordinates: </strong><a href="http://wikimapia.org/#lang=en&lat=24.824716&lon=78.329172&z=15&m=bs&show=/42114006/Satgata">24°49'30"N 78°19'54"E</a></p> <p>Selected bibliography:</p> <ul> <li><a href="https://catalog.lib.uchicago.edu/vufind/Search/Results?lookfor=Tughlug+dynasty%2C--1320-1413.&type=Subject">Tughlug dynasty, -- 1320-1413.</a></li> <li><a href="https://catalog.lib.uchicago.edu/vufind/Search/Results?lookfor=Fi%CC%84roz+Sha%CC%84h+Tug%CC%B2h%CC%B2laq%2C--Sultan+of+Delhi%2C---1388&type=Subject">Fīroz Shāh Tug̲h̲laq, -- Sultan of Delhi, -- -1388</a>.</li> </ul>
TranscriboQuest 2024 Medieval Literary
<p><strong># Team Medieval Literary: Documentation</strong><br><br><strong>## Context of the dataset</strong><br>This dataset was created in the context of TranscriboQuest 2024 (Medieval Literary Team) held in Lyon (11/09/2024-13/09/2024). The goal of this summer school was to get more acquainted with eScriptorium and produce a limited, but qualitative dataset of medieval manuscripts. The aim of this dataset was to contribute to underrepresented aspects of the manuscripts used in the CATMuS project. We opted to focus on medieval scientific documents that are damaged, in several different languages. The result is 808 lines transcribed by experts in the field. The dataset contains the images of the manuscripts and ALTO-XMLs. A general overview of manuscripts chosen is included in the readme.</p> <p><br><strong>## Damage</strong><br>One of the main features of the dataset was the damage done to the manuscript, which was expected to have some impact on automatic segmentation and transcription of the data. The short description of the type of the damage and it's actual impact on the manuscript is presented in the table in the readme.<br><br>As expected, damage caused some problems, mostly with segmentation and transcription. The more detailed description of both processes and challenges encountered during them is as follows.<br><br><strong>## Segmentation</strong><br>For identifying the zones of the manuscripts and segmenting the lines, bIIa.mlmodel was used. Afterwards, all zones were manually corrected. The largest challenge for the model proved to be the various different layouts of the medieval manuscripts. The model often identifies multiple columns as one text zone, which had to be manually corrected. Several reasons complicated this task: such as two columns being located closely together, resulting in incorrect numbering of lines (Toulouse, Bibliothèque d’Étude et du Patrimoine, 872), or three columns being written in an irregular way (BN rps 12533 II), resulting in wrong segmentation of them; the damaged state of certain folia (NF Français 12444). Irregular zones also lead to incorrect line ordering, which needed manual correction (Paris, BnF, latin 9380; Toulouse, Bibliothèque d’Étude et du Patrimoine, 872). Last, there was also a problem in KBR IV 398 / 5: the scribe of this document would leave an open space after the line of a verse. The model would identify this as a separate line.<br><br>The SegmOnto Guidelines (https://segmonto.github.io/) were followed to name the various zones of the manuscripts. Initials encompassing more than one line were included in the text line, as the next version of the CATMuS model will be able to read this. The applied zones are: MainZone, StampZone, NumberingZone, MarginTextZone, DropCapitalZone, DecorationZone, DamageZone.<br><br><strong>## Transcription</strong><br>The CATMuS guidelines were followed when transcribing the documents (https://catmus-guidelines.github.io/). The aim was to mimic the original documents as closely as possible, thus producing graphemic transcriptions. Allographic variants such as 'u'/'v' and 'i'/'j' were normalized. Abbreviations were not developped and medieval characters were continuously transcribed adhering to MUFI. To assure this, precomposed keyboards by CATMuS were used. Spaces were added where they would be semantically. For a more detailed description of the guidelines, we refer to the CATMuS guidelines.<br><br>To initially transcribe the manuscripts, CATMuS Medieval 1.5.0, Pinche et al. (DOI: 10.5281/zenodo.1274323) was applied. It has an accuracy rate of 95.1% (congruent to the average confidence score). Upon manual correction, this seemed to be lower, given the damaged nature of the manuscripts. The model had difficulty reading damaged parts (KBR IV 398 / 5; BNF Français 12444), faded ink (Toulouse 872), and identifying spaces (KBR IV 398 / 5; Paris, BnF, latin 9380). All errors were corrected manually and the provided transcriptions can be considered Ground Truth. <br><br>Common errors were confusion between 'u', 'm' and 'i' (BNF Français 12444; BnF latin 930; KBR IV 398 / 5; BN rps 12533 II) as well as between 'e', 'o' and 'c' (BnF latin 930; KBR IV 398 / 5). A stroke was also often added to 'p', due to the script of certain scribes (BNF Français 12444; KBR IV 398 / 5). A stroke was added to an 'l' at the end of a word, where a vertical tilde was required (LJS 216). In the BN rps 12533 II the main issue turned out to be the lack of special apothecary signs used by the author (for units such as dram ʒ (M+F2E6), scrupule ℈ (U+2108), or numbers such as Roman half ɟ (U+025F), etc.) in the CATMuS model. They were found and copied manually from the Inventaire des typèmes latins et français existant dans Unicode/MUFI ou à y faire entrer (http://jacques-andre.fr/PICA/SIGMA-PICA.pdf).<br><br>When choosing abreviation signs, some cases proved to be problematic: a tilde covering two letters can only be inserted on one letter; or one separate tilde can be put on each letter, which is not efficient. Being able to insert the long s with a stroke is odd compared to the fact that non-stroked s are not transcribed with a long s. In the different available keyboards, the distinction between superscript letters and combining letters is not completely clear when it comes to chose between the two : consequences of this choice should be explained somewhere.<br><br><strong>## Creators of the dataset</strong><br>Jessie Dummer, Emmanuelle Kuhry, Sylvain Besson, Zdzislaw Koczarski, Caroline Chevalier-Royet and Caroline Vandyck under supervision of Matthias Gille Levenson<br><br></p>
Early Medieval Latin Manuscripts Transmitting the Text of the Etymologiae of Isidore of Seville: an excel datasheet
<p>This excel file contains structured and formalized data about all surviving and identified early medieval Western manuscripts containing the text of the <em>Etymologiae</em> of Isidore of Seville, fully or partially. It records information about the place of origin, provenance, preservation, the date of origin, material properties, script, content, the state of preservation, presence of notable features, online representation, and bibliography of 507 manuscripts (v2.3.4: 496 manuscripts; v 2.3.2: 492 manuscripts; v2.1: 484 manuscripts; v2.0: 478 manuscripts) dated from the seventh to the first half of the eleventh centuries. This datasheet corresponds to the data published in the <em>Innovating Knowledge</em> database on 23 September 2024 (v2.3.4: 26 September 2023; v2.3.2: 2 August 2022; v2.1: 9 December 2021; v2.0: 12 October 2021), at: <a href="https://db.innovatingknowledge.nl/">db.innovatingknowledge.nl</a><br> </p> <p>More information about the <em>Innovating Knowledge</em> project is available at: <a href="https://innovatingknowledge.nl">innovatingknowledge.nl</a></p>
FIG. 43. — Horse T in Horses in the suburbs of a medieval city - a case study from Brno (Czech Republic)
FIG. 43. — Horse T_3258: proliferative periosteal lesions located on acetabular shaft. Scale bar: 5 cm.
FIG. 46 in Horses in the suburbs of a medieval city - a case study from Brno (Czech Republic)
FIG. 46. — Distribution of strontium radiogenic isotopic composition for each analysed individual (ID). The red points represent outliers measured in first molar of individual T_3256 (duplicated measurements).
FIG. 35. — Horse T in Horses in the suburbs of a medieval city - a case study from Brno (Czech Republic)
FIG. 35. — Horse T_3256: increased porosity and the new roughened bone on the palmar process and parietal surface of the posterior distal phalanx. Scale bar: 5 cm.
FIG. 41 in Horses in the suburbs of a medieval city - a case study from Brno (Czech Republic)
FIG. 41. — Right humerus of the horse T_3258: pronounced ossification in the area of teres tuberosity. Scale bar: 5 cm.
FIG. 40 in Horses in the suburbs of a medieval city - a case study from Brno (Czech Republic)
FIG. 40. — Left femur of the horse T_3258: new bone formation located on trochanter major. Scale bar: 5 cm.
FIG. 42. — Horse T in Horses in the suburbs of a medieval city - a case study from Brno (Czech Republic)
FIG. 42. — Horse T_3258: proliferative periosteal lesions located around dorsal surface and spinous processes of the sacrum. Scale bar: 5 cm.
FIG. 39 in Horses in the suburbs of a medieval city - a case study from Brno (Czech Republic)
FIG. 39. — Left calcaneus of the horse T_3258: new bone formation located on tuber calcanei. Scale bar: 5 cm.
FIG. 32 in Horses in the suburbs of a medieval city - a case study from Brno (Czech Republic)
FIG. 32. — Degraded posterior navicular bone of the horse M_802 (top). Severe exostoses on the posterior navicular bone of the horse K_3258 (bottom). Scale bar: 5 cm.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.